6533b831fe1ef96bd1299b55

RESEARCH PRODUCT

Manipulation of the spin in single molecule magnets via Landau-Zener transitions

Boris TsukerblatJuan M. Clemente-juanEugenio CoronadoAlejandro Gaita-ariñoAndrew Palii

subject

PhysicsCondensed matter physicsSpin states02 engineering and technology021001 nanoscience & nanotechnologyCondensed Matter Physics01 natural sciencesElectronic Optical and Magnetic MaterialsMagnetic anisotropyMagnetizationQubitMagnet0103 physical sciencesZener diode010306 general physics0210 nano-technologyQuantum tunnellingSpin-½

description

We theoretically investigate the effects of a magnetic pulse on a single-molecule magnet (SMM) initially magnetized by a dc field along the easy axis of magnetization. In the Landau\char21{}Zener (LZ) scheme, it is shown that the final spin state is a function of the shape and duration of the pulse, conditioned by the decoherence time of the SMM. In the case of coherent tunneling, the asymmetric pulses are shown to reverse the direction of the magnetization, while the symmetric pulses can only decrease the value of the initial magnetization. It is also demonstrated that the application of an external variable dc field in the hard plane of magnetization provides the possibility to tune the resulting magnetization due to quantum interference effects. The results and the conditions for the observation of the pulse-triggered LZ transitions are illustrated by the application of the proposed scheme to the well-studied single-molecule magnet Fe${}_{8}$. To put the results into perspective, some potential applications of SMMs experiencing pulse-induced LZ transitions, such as switching devices and qubits, are discussed.

10.1103/physrevb.84.184426http://dx.doi.org/10.1103/PhysRevB.84.184426